Blowout of turbulent jet diffusion flames

被引:13
|
作者
Stamps, Douglas [1 ]
Tieszen, Sheldon [2 ]
机构
[1] Univ Evansville, Dept Mech & Civil Engn, Evansville, IN 47722 USA
[2] Sandia Natl Labs, Albuquerque, NM 87185 USA
关键词
Blowout experiment; Stability limit; Diffusion flame; BURNING VELOCITIES; STABILIZATION MECHANISM; DIMETHYL ETHER; STABILITY; HYDROGEN; PREDICTION; DILUTION; LIMITS;
D O I
10.1016/j.fuel.2013.10.030
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
Experiments have been performed to determine the blowout of jet diffusion flames with pure fuels, oxygenated fuels, mixed fuels, and diluted fuels. Stability tests were conducted with pure hydrocarbons at the C-2 level to determine the effects of structural differences in the fuels. Diffusion flame blowout models were also used to correlate and interpret the data. Ethylene is more stable than ethane because of the additional heat release from the double-carbon bond and ethane is more stable than dimethyl ether. The blowout pressures of mixtures of ethylene and ethane are not linear contributions of component blowout pressures. Stability tests were conducted with ethylene diluted with air and nitrogen. Since both diluents have similar properties and also have a similar density to ethylene, factors in the blowout process, such as the laminar flame speed and air-fuel mass ratio, were isolated and measured. Stability tests with hydrogen diluted with helium, nitrogen, carbon dioxide, and sulfur hexafluoride were also conducted. The diluted hydrogen diffusion flames become less stable as the complexity of the diluent increases. (C) 2013 Elsevier Ltd. All rights reserved.
引用
收藏
页码:113 / 122
页数:10
相关论文
共 50 条
  • [1] Blowout of non-premixed turbulent jet flames with coflow under microgravity condition
    Wang, Qiang
    Hu, Longhua
    Wang, Shaoming
    Wang, Shuangfeng
    Chung, Suk Ho
    Fujita, Osamu
    COMBUSTION AND FLAME, 2019, 210 : 315 - 323
  • [2] Analysis of experimental blowout velocities of jet flames
    Rengel, B.
    Palacios, A.
    COMBUSTION AND FLAME, 2020, 213 : 237 - 239
  • [3] Prediction of the Blowout Limits of Turbulent Nonpremixed Jet Flames Using the Premixed Combustion Theory
    Leung, T.
    Wierzba, I.
    COMBUSTION SCIENCE AND TECHNOLOGY, 2010, 182 (10) : 1528 - 1545
  • [4] Numerical simulation of confined turbulent jet diffusion flames of methane
    Chen, JG
    Chen, HX
    Fu, S
    RECENT ADVANCES IN FLUID MECHANICS, 2004, : 869 - 872
  • [5] Effects of Diluents on Lifted Turbulent Methane and Ethylene Jet Flames
    Hutchins, Andrew R.
    Kribs, James D.
    Lyons, Kevin M.
    JOURNAL OF ENERGY RESOURCES TECHNOLOGY-TRANSACTIONS OF THE ASME, 2015, 137 (03):
  • [6] Analytical-numerical solution for turbulent jet diffusion flames of hydrogen
    F. N. Pereira
    G. S. L. Andreis
    A. L. De Bortoli
    N. R. Marcílio
    Journal of Mathematical Chemistry, 2013, 51 : 556 - 568
  • [7] A new reduced kinetic mechanism for turbulent jet diffusion flames of bioethanol
    Vaz, F. A.
    De Bortoli, A. L.
    APPLIED MATHEMATICS AND COMPUTATION, 2014, 247 : 918 - 929
  • [8] Analytical-numerical solution for turbulent jet diffusion flames of hydrogen
    Pereira, F. N.
    Andreis, G. S. L.
    De Bortoli, A. L.
    Marcilio, N. R.
    JOURNAL OF MATHEMATICAL CHEMISTRY, 2013, 51 (02) : 556 - 568
  • [9] TURBULENT STRUCTURE AND DYNAMICS OF SWIRLED, STRONGLY PULSED JET DIFFUSION FLAMES
    Liao, Ying-Hao
    Hermanson, James C.
    COMBUSTION SCIENCE AND TECHNOLOGY, 2013, 185 (11) : 1602 - 1623
  • [10] TURBULENT STRUCTURE DYNAMICS OF BUOYANT AND NON-BUOYANT PULSED JET DIFFUSION FLAMES
    Fregeau, Mathieu
    Hermanson, James C.
    Stocker, Dennis P.
    Hegde, Uday G.
    COMBUSTION SCIENCE AND TECHNOLOGY, 2010, 182 (03) : 309 - 330